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    • Biomechanics
      • Novel Biopolymer Hydrogels for Understanding Complex Soft Tissue Biomechanics
      • BRAIn mechaNIcs ACross Scales: Linking microstructure, mechanics and pathology
      • Multiscale modeling of nervous tissue: comprehensively linking microstructure, pathology, and mechanics
      • Modelling and simulation of nonlinear electro-thermo-visco-elastic EAPs(Electronic Electro-Active Polymers)
      • Modeling and computation of growth in soft biological matter
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      • On the Formulation and the Micromechanical Origin of Non-Classical Models of Diffusion
      • Mehrskalenmodellierung und -simulation der Mechanik von Materialien mit Faserstruktur
      • BRAIn mechaNIcs ACross Scales: Linking microstructure, mechanics and pathology
      • A coupled MD-FE simulation method accounting for interphases in nanoparticle filled thermoplastics.
      • Modelling and simulation of nonlinear electro-thermo-visco-elastic EAPs(Electronic Electro-Active Polymers)
      • Modeling and computation of growth in soft biological matter
      • Teilprojekt P11 – Fracture Control by Material Optimization
      • Teilprojekt P8 – Fracture in Polymer Composites: Meso to Macro
      • Novel Biopolymer Hydrogels for Understanding Complex Soft Tissue Biomechanics
      • A coupled MD-FE simulation method accounting for interphases in nanoparticle filled thermoplastics.
      • Teilprojekt P5 – Compressive Failure in Porous Materials
      • Modelling and simulation of nonlinear electro-thermo-visco-elastic EAPs(Electronic Electro-Active Polymers)
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      • Modeling and computation of growth in soft biological matter
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      • Multiscale modeling of nervous tissue: comprehensively linking microstructure, pathology, and mechanics
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      • Teilprojekt P12 – Postdoctoral Project: Quantum-to-Continuum Model of Thermoset Fracture
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      • Mikroskalige Charakterisierungsmethoden zur Kalibrierung von Stoffgesetzen für Biomaterialien und Kunststoffe
      • Electronic electro-active polymers under electric loading: Experiment, modeling and simulation
      • Material modelling of sheet-layered lamination stacks
      • Teilprojekt P6 – Fracture in Thermoplastics: Discrete-to-Continuum
      • Teilprojekt P10 – Configurational Fracture/Surface Mechanics
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      • Identifikation von Interphaseneigenschaften in Nanokompositen
      • Discrete and Continuous Methods for Modelling and Simulation of Polymeric Materials
      • Material modelling of sheet-layered lamination stacks
      • On the Modelling and Computation of Magneto-Sensitive-Elastomers
      • Mehrskalenmodellierung und -simulation der Mechanik von Materialien mit Faserstruktur
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      • C3: Parameter and shape optimization in finite elastoplasticity
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      • A hybrid Sampling-Stochastic-Finite-Element-Method for polymorphic, microstructural uncertainties in heterogeneous materials
      • A hybrid Sampling-Stochastic-Finite-Element-Method for polymorphic, microstructural uncertainties in heterogeneous materials
    • Multiscale mechanics
      • BRAIn mechaNIcs ACross Scales: Linking microstructure, mechanics and pathology
      • BRAIn mechaNIcs ACross Scales: Linking microstructure, mechanics and pathology
      • Teilprojekt P6 – Fracture in Thermoplastics: Discrete-to-Continuum
      • Teilprojekt P10 – Configurational Fracture/Surface Mechanics
      • Teilprojekt P11 – Fracture Control by Material Optimization
      • Teilprojekt P8 – Fracture in Polymer Composites: Meso to Macro
      • Novel Biopolymer Hydrogels for Understanding Complex Soft Tissue Biomechanics
      • Novel Biopolymer Hydrogels for Understanding Complex Soft Tissue Biomechanics
      • BRAIn mechaNIcs ACross Scales: Linking microstructure, mechanics and pathology
      • Teilprojekt P6 – Fracture in Thermoplastics: Discrete-to-Continuum
      • Teilprojekt P5 – Compressive Failure in Porous Materials
      • Multi-scale, Multi-physics Modelling and Computation of magneto-sensitive POLYmeric materials
      • Multi-scale modeling of nano-structured polymeric materials: from chemistry to materials performance
      • Identifikation von Interphaseneigenschaften in Nanokompositen
      • Novel Biopolymer Hydrogels for Understanding Complex Soft Tissue Biomechanics
      • Mesoscopic modelling and simulation of properties of additively manufactured metallic parts (C5)
      • Teilprojekt P5 – Compressive Failure in Porous Materials
      • Discrete and Continuous Methods for Modelling and Simulation of Polymeric Materials
      • Multi-scale, Multi-physics Modelling and Computation of magneto-sensitive POLYmeric materials
      • Multiscale modeling of nervous tissue: comprehensively linking microstructure, pathology, and mechanics
      • Multiscale modeling of nervous tissue: comprehensively linking microstructure, pathology, and mechanics
      • Multi-scale modeling of nano-structured polymeric materials: from chemistry to materials performance
      • Fractures across Scales: Integrating Mechanics, Materials Science, Mathematics, Chemistry, and Physics/ Skalenübergreifende Bruchvorgänge: Integration von Mechanik, Materialwissenschaften, Mathematik, Chemie und Physik
      • Identifikation von Interphaseneigenschaften in Nanokompositen
      • Bridging scales – from Quantum Mechanics to Continuum Mechanics. A Finite Element approach.
      • Teilprojekt P12 – Postdoctoral Project: Quantum-to-Continuum Model of Thermoset Fracture
      • Mikroskalige Charakterisierungsmethoden zur Kalibrierung von Stoffgesetzen für Biomaterialien und Kunststoffe
      • Multiscale modeling of nervous tissue: comprehensively linking microstructure, pathology, and mechanics
      • Fractures across Scales: Integrating Mechanics, Materials Science, Mathematics, Chemistry, and Physics/ Skalenübergreifende Bruchvorgänge: Integration von Mechanik, Materialwissenschaften, Mathematik, Chemie und Physik
      • Bridging scales – from Quantum Mechanics to Continuum Mechanics. A Finite Element approach.
      • Teilprojekt P12 – Postdoctoral Project: Quantum-to-Continuum Model of Thermoset Fracture
      • Mikroskalige Charakterisierungsmethoden zur Kalibrierung von Stoffgesetzen für Biomaterialien und Kunststoffe
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      • Experimentell basierte Modellierung, Simulation und Kompensation thermischer Einflüsse beim Drehen mesoheterogener Werkstoffe aus Al-MMC. Phase 2
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      • Reduced order modelling of non-linear gyroscopic systems in ALE formulation with frictional contact
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      • Teilprojekt P11 – Fracture Control by Material Optimization
      • Teilprojekt P11 – Fracture Control by Material Optimization
      • Teilprojekt P8 – Fracture in Polymer Composites: Meso to Macro
      • Teilprojekt P8 – Fracture in Polymer Composites: Meso to Macro
      • Structural optimization of shape and topology using an embedding domain discretization technique
      • Discrete and Continuous Methods for Modelling and Simulation of Polymeric Materials
      • Discrete and Continuous Methods for Modelling and Simulation of Polymeric Materials
      • Teilprojekt P10 – Configurational Fracture/Surface Mechanics
      • Teilprojekt P11 – Fracture Control by Material Optimization
      • Adaptive finite elements based on sensitivities for topological mesh changes
      • Teilprojekt P8 – Fracture in Polymer Composites: Meso to Macro
      • Discrete and Continuous Methods for Modelling and Simulation of Polymeric Materials
      • Teilprojekt P10 – Configurational Fracture/Surface Mechanics
    • Other Projects
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      • Fracture Across Scales and Materials, Processes and Disciplines
      • Fracture across Scales: Integrating Mechanics, Materials Science, Mathematics, Chemistry, and Physics (FRASCAL)
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  4. BRAIn mechaNIcs ACross Scales: Linking microstructure, mechanics and pathology

BRAIn mechaNIcs ACross Scales: Linking microstructure, mechanics and pathology

In page navigation: Research
  • Biomechanics
    • Novel Biopolymer Hydrogels for Understanding Complex Soft Tissue Biomechanics
    • BRAIn mechaNIcs ACross Scales: Linking microstructure, mechanics and pathology
    • Multiscale modeling of nervous tissue: comprehensively linking microstructure, pathology, and mechanics
    • Modelling and simulation of nonlinear electro-thermo-visco-elastic EAPs(Electronic Electro-Active Polymers)
    • Modeling and computation of growth in soft biological matter
  • Contact mechanics
  • Material Mechanics
  • Uncertainty Quantification
  • Multiscale mechanics
  • Process Simulation
  • Structural dynamics
  • Optimization
  • Other Projects

BRAIn mechaNIcs ACross Scales: Linking microstructure, mechanics and pathology

BRAIn mechaNIcs ACross Scales: Linking microstructure, mechanics and pathology

(Third Party Funds Single)

Overall project:
Project leader: Silvia Budday
Project members: Nina Reiter, Alexander Greiner, Mohammad Saeed Zarzor, Emma Griffiths
Start date: 1. October 2019
End date: 30. September 2022
Acronym: BRAINIACS
Funding source: DFG-Einzelförderung / Emmy-Noether-Programm (EIN-ENP)
URL: https://www.brainiacs.forschung.fau.de/

Abstract

The current research project aims to develop microstructurally motivated mechanical models for brain tissue that facilitate early diagnostics of neurodevelopmental or neurodegenerative diseases and enable the development of novel treatment strategies. In a first step, we will experimentally characterize the behavior of brain tissue across scales by using versatile testing techniques on the same sample. Through an accompanying microstructural analysis of both cellular and extra-cellular components, we will evaluate the complex interplay of brain structure, mechanics and function. We will also experimentally investigate dynamic changes in tissue properties during development and disease, due to changes in the mechanical environment of cells (mechanosensing), or external loading. Based on the simultaneous analysis of experimental and microstructural data, we will develop microstructurally motivated constitutive laws for the regionally varying mechanical behavior of brain tissue. In addition, we will develop evolution laws that predict remodeling processes during development, homeostasis, and disease. Through the implementation within a finite element framework, we will simulate the behavior of brain tissue under physiological and pathological conditions. We will predict how known biological processes on the cellular scale, such as changes in the tissue’s microstructure, translate into morphological changes on the macroscopic scale, which are easily detectable through modern imaging techniques. We will analyze progression of disease or mechanically-induced loss of brain function. The novel experimental procedures on the borderline of mechanics and biology, together with comprehensive theoretical and computational models, will form the cornerstone for predictive simulations that improve early diagnostics of pathological conditions, advance medical treatment strategies, and reduce the necessity of animal and human tissue experimentation. The established methodology will further open new pathways in the biofabrication of artificial organs.

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    Institute of Applied Mechanics
    Friedrich-Alexander-Universität Erlangen-Nürnberg

    Egerlandstrasse 5
    91058 Erlangen
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